Huang Guoxiang, Deng L, Payne M G
Electron & Optical Physics Division, NIST, Gaithersburg, Maryland 20899, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2005 Jul;72(1 Pt 2):016617. doi: 10.1103/PhysRevE.72.016617. Epub 2005 Jul 19.
We present a systematic study on the dynamics of a ultraslow optical soliton in a cold, highly resonant three-state atomic system under Raman excitation. Using a method of multiple scales we derive a modified nonlinear Schrödinger equation with high-order corrections that describe effects of linear and differential absorption, nonlinear dispersion, delay response of nonlinear refractive index, diffraction, and third-order dispersion. Taking these effects as perturbations we investigate in detail the evolution of the ultraslow optical soliton using a standard soliton perturbation theory. We show that due to these high-order corrections the ultraslow optical soliton undergoes deformation, change of propagating velocity, and shift of oscillating frequency. In addition, a small radiation superposed by dispersive waves is also generated from the soliton. The results of the present work may provide a guidance that is useful for experimental demonstration of ultraslow optical soliton in cold atomic systems.
我们对拉曼激发下冷的、高共振三态原子系统中超慢光孤子的动力学进行了系统研究。使用多尺度方法,我们推导了一个具有高阶修正的修正非线性薛定谔方程,该方程描述了线性和微分吸收、非线性色散、非线性折射率的延迟响应、衍射和三阶色散的影响。将这些影响视为微扰,我们使用标准孤子微扰理论详细研究了超慢光孤子的演化。我们表明,由于这些高阶修正,超慢光孤子会发生变形、传播速度变化和振荡频率偏移。此外,孤子还会产生由色散波叠加的小辐射。本工作的结果可为冷原子系统中超慢光孤子的实验演示提供有用的指导。